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微滴介导的水云中多相循环驱动化学选择性电解。

Microdroplet-Mediated Multiphase Cycling in a Cloud of Water Drives Chemoselective Electrolysis.

作者信息

Chen Xuke, Xia Yu, Yang Yifan, Xu Yunpeng, Jia Xiuquan, N Zare Richard, Wang Feng

机构信息

State Key Laboratory of Catalysis, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Dalian 116023, P. R. China.

University of Chinese Academy of Sciences, Beijing 100049, P. R. China.

出版信息

J Am Chem Soc. 2024 Oct 30;146(43):29742-29750. doi: 10.1021/jacs.4c11224. Epub 2024 Oct 21.

Abstract

Electrification of water in clouds leads to fascinating redox reactions on Earth. However, little is known about cloud electrochemistry, except for lightning, a natural hazard that is nearly impossible to harness. We report a controllable electrochemistry that can be enabled in microclouds by fast phase switching of water between the microdroplet, vapor, and bulk phase. Due to the size-dependent charge transfer between droplets during atomization, this process generates an alternating voltage arising from the self-electrification and discharging of microdroplets, vapor, and bulk phase by electron and ion transfer. We show that the microclouds with alternating voltage cause 1,2-dichloroethane (ClHC-CHCl) to be converted to vinyl chloride (HC═CHCl) at ∼80% selectivity. These findings highlight the importance of controlled cloud electrochemistry in accelerating the removal of volatile organic compounds and treating contaminated water. We suggest that this work opens an avenue for harnessing cloud electrochemistry to solve challenging chemoselectivity problems in aqueous reactions of environmental and industrial importance.

摘要

云层中的水带电会在地球上引发迷人的氧化还原反应。然而,除了闪电这种几乎无法利用的自然灾害外,人们对云电化学知之甚少。我们报告了一种可控电化学,它可以通过水在微滴、蒸汽和本体相之间的快速相切换在微云中实现。由于雾化过程中液滴间与尺寸相关的电荷转移,该过程通过电子和离子转移产生由微滴、蒸汽和本体相的自带电和放电引起的交流电压。我们表明,具有交流电压的微云能使1,2 - 二氯乙烷(ClHC-CHCl)以约80%的选择性转化为氯乙烯(HC═CHCl)。这些发现凸显了可控云电化学在加速挥发性有机化合物去除和处理受污染水中的重要性。我们认为这项工作为利用云电化学解决环境和工业重要性的水相反应中具有挑战性的化学选择性问题开辟了一条途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ecd3/11669384/f3fafaef07d2/ja4c11224_0001.jpg

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